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Covalent inhibition of hAChE by organophosphates causes homodimer dissociation through long-range allosteric effects
- Source :
- The Journal of biological chemistry, vol 297, iss 3, The Journal of Biological Chemistry
- Publication Year :
- 2021
- Publisher :
- eScholarship, University of California, 2021.
-
Abstract
- Acetylcholinesterase (EC 3.1.1.7), a key acetylcholine-hydrolyzing enzyme in cholinergic neurotransmission, is present in a variety of states in situ, including monomers, C-terminally disulfide-linked homodimers, homotetramers, and up to three tetramers covalently attached to structural subunits. Could oligomerization that ensures high local concentrations of catalytic sites necessary for efficient neurotransmission be affected by environmental factors? Using small-angle X-ray scattering (SAXS) and cryo-EM, we demonstrate that homodimerization of recombinant monomeric human acetylcholinesterase (hAChE) in solution occurs through a C-terminal four-helix bundle at micromolar concentrations. We show that diethylphosphorylation of the active serine in the catalytic gorge or isopropylmethylphosphonylation by the RP enantiomer of sarin promotes a 10-fold increase in homodimer dissociation. We also demonstrate the dissociation of organophosphate (OP)-conjugated dimers is reversed by structurally diverse oximes 2PAM, HI6, or RS194B, as demonstrated by SAXS of diethylphosphoryl-hAChE. However, binding of oximes to the native ligand-free hAChE, binding of high-affinity reversible ligands, or formation of an SP-sarin-hAChE conjugate had no effect on homodimerization. Dissociation monitored by time-resolved SAXS occurs in milliseconds, consistent with rates of hAChE covalent inhibition. OP-induced dissociation was not observed in the SAXS profiles of the double-mutant Y337A/F338A, where the active center gorge volume is larger than in wildtype hAChE. These observations suggest a key role of the tightly packed acyl pocket in allosterically triggered OP-induced dimer dissociation, with the potential for local reduction of acetylcholine-hydrolytic power in situ. Computational models predict allosteric correlated motions extending from the acyl pocket toward the four-helix bundle dimerization interface 25Å away.
- Subjects :
- Small Angle
structure–function
Dimer
Protein Data Bank (RCSB PDB)
organophosphate intoxication
Biochemistry
Medical and Health Sciences
Dissociation (chemistry)
Active center
Scattering
chemistry.chemical_compound
F-2-F, face-to-face
X-Ray Diffraction
AChE, acetylcholinesterase
Catalytic Domain
Phosphorylation
Helix bundle
Chromatography
Gel
Chemistry
SAXS, small-angle X-ray scattering
hNL, human neuroligin
Stereoisomerism
SAXS
acetylcholinesterase
hBChE, human butyrylcholinesterase
4-helix bundle
Biological Sciences
MD, molecular dynamics
Enzyme structure
Organophosphates
enzyme structure
Covalent bond
Chromatography, Gel
OP, organophosphate
Electrophoresis, Polyacrylamide Gel
Dimerization
Research Article
Electrophoresis
Biochemistry & Molecular Biology
SEC, size-exclusion chromatography
oxime reactivation
Allosteric regulation
CBS, choline-binding site
POX, paraoxon
Allosteric Regulation
PDB, Protein Data Bank
Scattering, Small Angle
Humans
Molecular Biology
4HB, 4-helix bundle
Polyacrylamide Gel
allosteric behavior
Cryoelectron Microscopy
Neurosciences
Cell Biology
TR-SAXS, time-resolved SAXS
molecular dynamics
HEK293 Cells
paraoxon
small-angle X-ray scattering
Chemical Sciences
Biophysics
Cholinesterase Inhibitors
PAS, peripheral anionic site
Subjects
Details
- Database :
- OpenAIRE
- Journal :
- The Journal of biological chemistry, vol 297, iss 3, The Journal of Biological Chemistry
- Accession number :
- edsair.doi.dedup.....a03351602374b055c8336577d63112ba